Spin State Crossover of an Fe1 Single-Atom Catalyst for Promoted Methane Conversion to Oxygenates under Mild Conditions

Abstract Engineering the electronic and spin states of active centers for promoted oxygenate production from methane remains a fundamental challenge in catalysis. Herein, we demonstrate that spin crossover of Fe1 single-atoms from high spin (HS) to low spin (LS) could boost the oxygenate yield by 5.3-fold. The spin transition is realized by coordinating Fe1 sites with strong-field ligand carbon monoxide (CO). Compared with traditional L-FeHS-O (L = H2O) motifs, low-spin L-FeLS-O (L = CO) with CO coordination introduces unoccupied O 2p states near the Fermi level and increases electron density on the oxygen center. The resulting enhancement in electrophilicity of the oxo center facilitates hydrogen abstraction from methane, lowering the C−H activation barrier from 1.26 eV to 0.65 eV. Consequently, an oxygenate productivity of 1615.3 mmol gFe−1 h−1 with ∼100% selectivity is achieved at 30 °C. The strategy of spin regulation paves an avenue for designing prospective single-atom catalysts toward efficient methane valorization.

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Journal
ACS Catalysis
Published
2026-09-15
DOI
https://doi.org/10.1021/acscatal.6c04820
Primary Topic
Metal-Catalyzed Oxygenation Mechanisms
Type
article
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article

Spin State Crossover of an Fe1 Single-Atom Catalyst for Promoted Methane Conversion to Oxygenates under Mild Conditions

Beien Zhu, Chuande Huang, Yi Gao, Tao Zhang et al.
ACS Catalysis
Metal-Catalyzed Oxygenation Mechanisms
article

Spin State Crossover of an Fe1 Single-Atom Catalyst for Promoted Methane Conversion to Oxygenates under Mild Conditions

Beien Zhu, Chuande Huang, Yi Gao, Tao Zhang, Xiaodong Wang, Jian Lin, Baolin Hou, Weibin Xu, Lei Ying, Zhen Wang
article en

Abstract

Abstract Engineering the electronic and spin states of active centers for promoted oxygenate production from methane remains a fundamental challenge in catalysis. Herein, we demonstrate that spin crossover of Fe1 single-atoms from high spin (HS) to low spin (LS) could boost the oxygenate yield by 5.3-fold. The spin transition is realized by coordinating Fe1 sites with strong-field ligand carbon monoxide (CO). Compared with traditional L-FeHS-O (L = H2O) motifs, low-spin L-FeLS-O (L = CO) with CO coordination introduces unoccupied O 2p states near the Fermi level and increases electron density on the oxygen center. The resulting enhancement in electrophilicity of the oxo center facilitates hydrogen abstraction from methane, lowering the C−H activation barrier from 1.26 eV to 0.65 eV. Consequently, an oxygenate productivity of 1615.3 mmol gFe−1 h−1 with ∼100% selectivity is achieved at 30 °C. The strategy of spin regulation paves an avenue for designing prospective single-atom catalysts toward efficient methane valorization.

ACS Catalysis
Chinese Academy of Engineering (CN), University of Chinese Academy of Sciences (CN)
Openalex Percentile: Top 25%
Metal-Catalyzed Oxygenation Mechanisms
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Spin State Crossover of an Fe1 Single-Atom Catalyst for Promoted Methane Conversion to Oxygenates under Mild Conditions — Beien Zhu, Chuande Huang, et al. · ACS Catalysis (2026) | TGRS Research Map | TGRS